Beam distortion control system using fluid channels
Paper and continuous web scanners operate at varying and high temperature conditions that cause distortion of the support beams and ultimately misalignment of the scanner heads. Circulating a heat transfer fluid between the support beams and through segmented fluid channels within the beam allows tuning of the beam's deflection when operating in an uneven thermal environment. The heat transfer rate can be modulated through various techniques, including: (1) varying the flow rate through each channel under manual or automatic control, (2) controlling the inlet fluid temperature of each channel with fluid immersion heaters or coolers, and (3) setting up the flow sequence via distribution channels that are, for example, in parallel, serial, or mixed.
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The present invention generally relates to scanner measurement systems for determining parameters of continuous sheet materials during production and, more particularly, to techniques for maintaining the alignment of dual scanner heads by controlling the temperature profiles of their support beams through selective distribution of a heat transfer medium through segmented fluid channels within the beams.
BACKGROUND OF THE INVENTIONVarious sensor systems have been developed for detecting sheet properties “on-line,” i.e., on a sheet-making machine while it is operating. Sensors for continuous flat sheet production processes typically employ single or dual-sided packages with on-line sensors that traverse or scan traveling webs of sheet material during manufacture. With dual scanners, the heads or assemblies are fixed to beams that span both sides of the sheet with linear guidance tracks to allow the sensors to move in unison in the cross direction, i.e., in the direction perpendicular to the direction of sheet travel. Depending upon the sheet-making operation, cross-directional distances can range up to about twelve meters or more. In the paper making art, for instance, the on-line sensors detect variables such as basis weight, moisture content, and caliper of sheets during manufacture.
On-line measurements are difficult to make accurately. In the case where the sensor comprises dual scanner heads, under normal operating conditions the alignment of the upper and lower track systems are similar to factory alignment. However, if the mill-operating environment exposes the beams to uneven thermal loading, the upper and lower sensor paths will deviate from factory specifications. This will cause variations in sensor readings across the width of the sheet.
SUMMARY OF THE INVENTIONThe present invention is directed to techniques for controlling the temperature profiles of the support beams in dual scanner systems in order to minimize beam distortion. Paper and continuous web scanners are often operated at varying and high temperature conditions. Thermal loading originate from a myriad of sources in the proximity of the scanner that cause ambient air temperature gradients between the beams that are positioned above and below the sheet of paper. Major contributors include hot or cold air sources, such as exterior doors, openings to cold basements, and hot drier exits, and directional heating from infrared radiation sources typically used to dry coatings on sheets. The temperature fluctuations cause beam distortion that adversely affect the sensors that measure, for example, the basis weight, thickness, and composition of the moving sheet.
To address this problem, with the present invention, segmented fluid channels are incorporated into the support beam, and by selectively distributing a heat transfer medium through the channels, beam distortion can be significantly reduced or eliminated. The invention is based in part on the recognition that in order to minimize temperature-induced distortions in large-scale industrial dual sensor systems where the support beams have large cavities, it is necessary to employ a segmented fluid design where individual channels are strategically integrated into different regions of the beam such as, for instance, the side, top and bottom interior surfaces of the beam cavity. By controlling the heat transfer rate in the channels, the beam's deflection can be tuned when operating in an uneven thermal environment. The heat transfer fluid is not simply circulated in a closed loop between the cavities of the upper and lower beam structures in hope of equalizing the temperature of the metal beams. Rather, with the present invention, the heat transfer rate can be modulated through various techniques, including, for instance: (1) varying the flow rate through each channel under manual or automatic control, (2) controlling the inlet fluid temperature of each channel with fluid immersion heaters or coolers, and (3) setting up the flow sequence via distribution channels that are, for example, in parallel, in series, or combinations.
In one aspect, the invention is directed to beam system for supporting one or more mounted carriages that moves along defined paths, which includes:
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- a first elongated member that extends along a first direction wherein the first elongated member includes a plurality of first fluid channels therein and the first elongated member supports a first carriage that is mounted thereon;
- a second elongated member that extends along a second direction that is parallel to the first direction wherein the second elongated member includes a plurality of second fluid channels therein and the second elongated member supports a second carriage that is mounted thereon; and
- means for delivering a fluid through the first and second fluid channels to control the temperatures of the first and second elongated members.
In another aspect, the invention is directed to a system for measuring properties of the composition of traveling webs of sheet material during manufacture, which includes:
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- a first track means mounted to extend generally parallel to one face of a traveling web in the cross direction wherein the first track means includes a plurality of first fluid channels therein;
- a first sensor device that is mounted on the first track means and that moves along the cross direction;
- a second track means mounted to extend generally parallel to the first track means adjacent the opposite face of the web wherein the second track means includes a plurality of second fluid channels therein;
- second sensor device that is mounted on the second track means and that moves along the cross direction, wherein the first and second sensor devices are aligned as they move back and forth along the cross direction; and
- means for delivering a modulated fluid heat transfer medium through the first and second fluid channels in response to environmental temperature gradients to which the first and second track means are exposed.
In yet another aspect, the invention is directed to a method of compensating for structural distortions in a scanning system that are caused by uneven thermal environment of the scanning system that measures properties of traveling webs of sheet material during manufacture, wherein the scanning system includes:
-
- a first track means mounted to extend generally parallel to a face of a traveling web in the cross direction
- a radiation source that is mounted on the first track means and moves along the cross direction and that directs radiation onto the face of the traveling web;
- a second track means mounted to extend generally parallel to the first track means adjacent an opposite face of the web; and
- a radiation detector that is mounted on the second track means and moves along the cross direction and that detects radiation transmitted through the web, wherein the method includes the steps of:
- (a) forming a plurality of first fluid channels in the first track means;
- (b) forming a plurality of second fluid channels in the second track means; and
- (c) distributing a fluid heat transfer medium through the plurality of first and second fluid channels in order to reduce temperature differential between the first track means and the second track means in order to maintain alignment of the radiation source and the radiation detector as the radiation source and radiation detector move along the cross direction.
Upper scanner head 10 is supported by an upper support beam 20 that has a lower surface to which a series of laterally spaced apart rigid support structures is mounted. These vertical structures support track 22. A roller carriage 24 engages track 22 as the carriage advances along the cross direction to a moving sheet 8. The lower scanner head 12 is supported by a lower support beam 30 that has a lower surface on which a plurality of laterally spaced apart rigid support structures is mounted. Upper and lower support beams 20, 30 are mounted onto a pair of upright end members (not shown).
Movement of the roller carriage is facilitated by a drive mechanism similar to that of the upper scanner head. Vertical structures also support track 38 onto which carriage 36 is engaged. A power chain 34 supplies electricity and electrical signal to lower scanner head 12. Lower sensor head 12 is mounted on a member 32 that extends from roller carriage 36 so as to position lower sensor head 12 adjacent to upper scanner head 10. The operative faces or plates 14, 16 of the lower and upper scanner heads 12, 10 define a measurement gap through which a web of material 8, such as paper, moves. Lateral openings 4 and 6 of the measurement gap allow the scanner to move in the cross direction (CD) as the paper travels in the machine direction. The movement of the dual scanner heads 10, 12, is synchronized with respect to speed and direction so that they are aligned with each other. Scanning systems having sensor components on opposite sides of the sheet being analyzed are described, for example, in U.S. Pat. No. 5,773,714 to Shead and U.S. Pat. No. 5,166,748 to Dahlquist, which are incorporated herein by reference.
Scanner heads 10, 12 serve as platforms for carrying sensors to detect sheet properties, such as basis weight, in the case of paper. For example, lower scanner head 12 may carry a radiation source, such as a nuclear beta radian source, and upper scanner head 10 may carry a detector. In this case, the sensors can be employed to make basis weight measurements by measuring the radiation intensity incident on the detector when a sheet is present as compared to the beta radiation that is incident upon the detector, when no sheet is present; that is, the basis weight is measured by the beta radiation attenuated by the sheet material.
Alternatively, to measure the moisture content of paper, an infrared radiation source can be positioned in the lower scanner head 12 and the radiation that is transmitted through the paper is captured by a detector that is located in the upper scanner head 10. Analysis of the transmitted radiation yields the moisture content. Exemplary scanning dual head sensors employing radiation source and detectors are described, for example, in U.S. Pat. No. 5,654,799 to Chase et al., U.S. Pat. No. 5,793,486 to Gordon et al., and U.S. Pat. No. 7,494,567 to Haran, which are incorporated herein by reference.
As shown in
Similarly,
Modulation of heat transfer within the fluid channels can be achieved by a number of techniques, including for example, regulating the temperature and/or flow rate of the fluid heat transfer medium and appropriate channel coupling of the upper to lower (or lower to upper) sets of fluid channels.
As further illustrated in
Control system 200 further includes alignment sensors 220 that are positioned on scanner heads 10, 12 (
Instead of responding to changes in the alignment in scanner heads 10, 12, the control system 200 can maintain the temperature of upper and lower support beams 202, 204 within predetermined temperature ranges. In this configuration, the adjustments in heat exchanges are made in response to temperature measurements of the beams.
Control system 300 further includes alignment sensors 320 that are positioned on scanner heads 10, 12 (
If a large scanner system is housed in a mill where the temperature gradient from the cold factory floor to the top of the upper beam is significant, it may be more energy efficient to selectively couple segmented fluid channels in the top beam to those in the lower beam. For example, referring to
As is apparent, with the present invention, by intelligently modulating the heat transfer rate in the segmented channels within the support beam structures via control of flow rate, inlet fluid temperature and/or tube connection configurations between beams, it is expected that environmental heat loading can be compensated for whether the environmental heat loading is very localized or extreme. By selectively heating or cooling beam surfaces with the segmented channels it is possible that the beam curvature can be altered in a controlled fashion.
Beam distortion control can also be achieved in some instances by simply circulating fluid between the upper and lower support beams in a passive manner without any external heating or cooling.
As is apparent, the systems of
As an example, if the upper beam is in an ambient environment of 60° C., due to its location above a hot sheet, and the lower beam is in an ambient environment of 30° C., due to its proximity to cool floor concrete, then the action of the circulating fluid will attempt to transfer heat from the upper beam to the lower beam. Heated fluid from the top beam is circulated then through the lower beam to heat the lower beam higher than ambient. Eventually an equilibrium between all the heat transfer rates is achieved with the entire system operating at near the average of the two operating temperatures (60+30)/2=45° C. If the volume and/or circulation rate of the fluid are fast enough, the fluid will be able to move enough energy from the upper beam without changing fluid temperature significantly, for instance, less than 0.5° C., thereby affording both beams to be stabilized at nearly the same temperature.
The foregoing has described the principles, preferred embodiments and modes of operation of the present invention. However, the invention should not be construed as being limited to the particular embodiments discussed. Thus, the above-described embodiments should be regarded as illustrative rather than restrictive, and it should be appreciated that variations may be made in those embodiments by workers skilled in the art without departing from the scope of the present invention as defined by the following claims.
Claims
1. A system for measuring properties of the composition of traveling webs of sheet material that are moving in a machine direction during manufacture, which comprises:
- a first track mounted to extend in a cross direction, which is perpendicular to the machine direction, and adjacent to a face of a traveling web wherein the first track comprises a first elongated monolithic member with a first upper wall, a first lower wall and first and second side walls and a plurality of first segmented fluid channels that are integrated into two or more walls of the first monolithic member which has a rectangular cross section and hollow cavity;
- a first sensor device that is mounted on the first track and that moves along the cross direction;
- a second track mounted to extend generally parallel to the first track and adjacent a second face of the traveling web that is opposite the first face of the traveling web wherein the second track comprises a second elongated monolithic member with a second upper wall, a second lower wall and third and fourth side walls and a plurality of second segmented fluid channels that are integrated into two or more walls of the second monolithic member which has a rectangular cross section and hollow cavity;
- a second sensor device that is mounted on the second track and that moves along the cross direction, wherein the first and second sensor devices are aligned as they move back and forth along the cross direction; and
- means for delivering a modulated fluid heat transfer medium through the plurality of first and second segmented fluid channels in response to environmental temperature gradients to which the first and second track are exposed such that the fluid heat transfer medium is in direct thermal communication with the first and second monolithic members.
2. The system of claim 1 comprising means for measuring the alignment of the first and second sensor devices as the move back and forth along the cross direction.
3. The system of claim 1 wherein the means for delivering the modulated fluid heat transfer medium selectively heats or cools heat transfer medium as it enters or exits one or more of the plurality of first and second segmented fluid channels.
4. The system of claim 1 wherein the plurality of first segmented fluid channels comprise from 2 to 8 first individual fluid channels and the plurality of second segmented fluid channels comprise from 2 to 8 second individual fluid channels.
5. The system of claim 1 wherein the flow rate of fluid heat transfer medium through the plurality of first and second segmented fluid channels ranges from 20 to 200 liters per minute.
6. The system of claim 1 wherein the first sensor device includes a radiation source that directs radiation onto the first face of the traveling web and wherein the second sensor device includes radiation detector that detects radiation transmitted through the traveling web and the radiation source moves back and forth along the cross direction in registration with the radiation detector.
7. A method of compensating for structural distortions in a scanning system that are caused by uneven thermal environment of the scanning system that measures properties of traveling webs of sheet material that are moving in a machine direction during manufacture, wherein the scanning system includes:
- a first track mounted to extend in a cross direction, which is perpendicular to the machine direction, and adjacent to a first face of a traveling web wherein the first track comprises a first elongated monolithic member with a first upper wall, a first lower wall and first and second side walls and which has a rectangular cross section and hollow cavity;
- a radiation source that is mounted on the first track and moves along the cross direction and that directs radiation onto the first face of the traveling web;
- a second track mounted to extend generally parallel to the first track and adjacent a second face of the traveling web that is opposite the first face of the traveling web wherein the second track comprises a second elongated monolithic member with a second upper wall, a second lower wall and third and fourth side walls and which has a rectangular cross section and hollow cavity; and
- a radiation detector that is mounted on the second track and moves along the cross direction and that detects radiation transmitted through the traveling web, wherein the method comprises the steps of:
- (a) forming a plurality of first segmented individual fluid channels that are integrated into two or more walls of the first elongated monolithic member;
- (b) forming a plurality of second segmented individual fluid channels that are integrated into two or more walls of the second elongated monolithic member; and
- (c) distributing a fluid heat transfer medium through the plurality of first and second segmented individual, fluid channels in order to reduce temperature differential between the first track and the second track and to maintain alignment of the radiation source and the radiation detector as the radiation source and radiation detector move along the cross direction.
8. The method of claim 7 wherein the first track is subject to first fluctuating environmental conditions with attendant temperature changes and the second track is subject to second fluctuating environmental conditions with attendant temperature changes.
9. The method of claim 8 wherein step (c) comprises (i) selectively heating or cooling the plurality of first segmented individual fluid channels with the fluid heat transfer medium and (ii) selectively heating, or cooling the plurality of second segmented individual fluid channels with the fluid heat transfer medium as necessary to maintain alignment of the radiation source and radiation detector at a predetermined range of alignment.
10. The method of claim 8 wherein step (c) comprises (i) heating or cooling the first track and (ii) selectively heating or cooling the second track as necessary to tune deflection of the first track and/or the second track in response to first and second fluctuating environmental conditions.
11. The method of claim 8 wherein step (c) comprises regulating the flow rates of the fluid heat transfer medium through the plurality of first and second segmented individual fluid channels.
12. The system of claim 1 wherein the first and second side walls of the first elongated monolithic member define exterior portions that are exposed to the environmental temperature gradients and the plurality of first segmented fluid channels are integrated into the first and second side walls and wherein the second and third side walls of the second elongated monolithic member define exterior portions that are exposed the environmental temperature gradients and the plurality of second segmented fluid channels are integrated into the third and fourth side walls.
13. The system of claim 1 wherein the first and second side walls of the first elongated monolithic member define exterior portions that are exposed the environmental temperature gradients and the plurality of first segmented fluid channels are integrated into each of the walls of the first elongated monolithic member and wherein the second and third side walls of the second elongated monolithic member define exterior portions that are exposed the environmental temperature gradients and the plurality of second segmented fluid channels are integrated into each of the walls of the second elongated monolithic member.
14. The system of claim 1 wherein the means for delivering a modulated fluid circulates the fluid heat transfer medium at a first temperature through the plurality of first segmented fluid channels and circulates the fluid heat transfer medium at a second through the plurality of second segmented fluid channels.
15. The method of claim 7 wherein the first and second side walls of the first elongated monolithic member define exterior portions that are exposed to fluctuating environmental conditions and the plurality of first segmented individual fluid channels are integrated into the first and second side walls and wherein the second and third side walls of the second elongated monolithic member define exterior portions that are exposed to fluctuating environmental conditions and the plurality of second segmented individual fluid channels are integrated into the third and fourth side walls.
16. The method of claim 7 wherein the first and second side walls of the first elongated monolithic member define exterior portions that are exposed to fluctuating environmental conditions and the plurality of first segmented individual fluid channels are integrated into each of the walls of the first elongated monolithic member and wherein the second and third side walls of the second elongated monolithic member define exterior portions that are exposed to fluctuating environmental conditions and the plurality of second segmented individual fluid channels are integrated into each of the walls of the second elongated monolithic member.
17. The method of claim 7 wherein step (c) comprises distributing the fluid heat transfer medium at a first temperature through the plurality of first segmented individual fluid channels and distributing the fluid heat transfer medium at a second temperature through the plurality of second segmented individual fluid channels.
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Type: Grant
Filed: Jan 26, 2011
Date of Patent: Jun 3, 2014
Patent Publication Number: 20120187317
Assignee: Honeywell ASCa Inc. (Mississauga)
Inventors: Ron Beselt (Burnaby), Michael Wardas (North Vancouver), Cris Andronic (Burnaby)
Primary Examiner: John Lee
Application Number: 13/014,460
International Classification: G01N 21/89 (20060101); G01N 21/86 (20060101);